Integrated photocatalytic-biological reactor for accelerated phenol mineralization

生物降解 光降解 矿化(土壤科学) 苯酚 光催化 生物膜 化学 降级(电信) 微生物降解 环境化学 光化学 催化作用 化学工程 核化学 过氧化氢 水溶液 材料科学 有机化学 细菌 微生物 氮气 生物 电信 计算机科学 工程类 遗传学
作者
Yongming Zhang,Lei Wang,Bruce E. Rittmann
出处
期刊:Applied Microbiology and Biotechnology [Springer Science+Business Media]
卷期号:86 (6): 1977-1985 被引量:47
标识
DOI:10.1007/s00253-010-2458-x
摘要

An integrated photocatalytic-biological reactor (IPBR) was developed for accelerated phenol degradation and mineralization. In the IPBR, photodegradation and biodegradation occurred simultaneously, but in two separated zones: a piece of mat-glass plate coated with TiO(2) film and illuminated by UV light was connected by internal circulation to a honeycomb ceramic that was the biofilm carrier for biodegradation. This arrangement was designed to give intimate coupling of photocatalysis and biodegradation. Phenol degradation was investigated by following three protocols: photocatlysis with TiO(2) film under ultraviolet light, but no biofilm (photodegradation); biofilm biodegradation with no UV light (biodegradation); and simultaneous photodegradation and biodegradation (intimately coupled photobiodegradation). Photodegradation alone could partly degrade phenol, but was not able to achieve significant mineralization, even with an HRT of 10 h. Biodegradation alone could completely degrade phenol, but it did not mineralize the COD by more than 74%. Photobiodegradation allowed continuous rapid degradation of phenol, but it also led to more complete mineralization of phenol (up to 92%) than the other protocols. The results demonstrate that intimate coupling was achieved by protecting the biofilm from UV and free-radical inhibition. With phenol as the target compound, the main advantage of intimate coupling in the IPBR was increased mineralization, presumably because photocatalysis made soluble microbial products more rapidly biodegradable.
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